Literature DB >> 34860015

Identification of Extracellular Key Enzyme and Intracellular Metabolic Pathway in Alginate-Degrading Consortia via an Integrated Metaproteomic/Metagenomic Analysis.

Zi-Qian Geng1, Ding-Kang Qian1, Zhi-Yi Hu1, Shuai Wang1, Yang Yan1, Mark C M van Loosdrecht2, Raymond Jianxiong Zeng1, Fang Zhang1.   

Abstract

Uronic acid in extracellular polymeric substances is a primary but often ignored factor related to the difficult hydrolysis of waste-activated sludge (WAS), with alginate as a typical polymer. Previously, we enriched alginate-degrading consortia (ADC) in batch reactors that can enhance methane production from WAS, but the enzymes and metabolic pathway are not well documented. In this work, two chemostats in series were operated to enrich ADC, in which 10 g/L alginate was wholly consumed. Based on it, the extracellular alginate lyase (∼130 kD, EC 4.2.2.3) in the cultures was identified by metaproteomic analysis. This enzyme offers a high specificity to convert alginate to disaccharides over other mentioned hydrolases. Genus Bacteroides (>60%) was revealed as the key bacterium for alginate conversion. A new Entner-Doudoroff pathway of alginate via 5-dehydro-4-deoxy-d-glucuronate (DDG) and 3-deoxy-d-glycerol-2,5-hexdiulosonate (DGH) as the intermediates to 2-keto-3-deoxy-gluconate (KDG) was constructed based on the metagenomic and metaproteomic analysis. In summary, this work documented the core enzymes and metabolic pathway for alginate degradation, which provides a good paradigm when analyzing the degrading mechanism of unacquainted substrates. The outcome will further contribute to the application of Bacteroides-dominated ADC on WAS methanogenesis in the future.

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Keywords:  Bacteroides; DDG and DGH; alginate-degrading consortia; extracellular alginate lyase (EC 4.2.2.3); new Entner−Doudoroff pathway; two chemostats in series

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Year:  2021        PMID: 34860015     DOI: 10.1021/acs.est.1c05289

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

1.  Electricity production and key exoelectrogens in a mixed-culture psychrophilic microbial fuel cell at 4 °C.

Authors:  Kun Dai; Yang Yan; Qing-Ting Wang; Si-Jie Zheng; Zi-Qing Huang; Ting Sun; Raymond Jianxiong Zeng; Fang Zhang
Journal:  Appl Microbiol Biotechnol       Date:  2022-06-27       Impact factor: 4.813

  1 in total

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